Unit 6: Basic Aerodynamic Components - Practice Quiz

ASE103 — Fly Against Gravity 60 Questions
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1 What is an airfoil?

Understanding the configurations of airfoil and wings Easy
A. A frame that supports landing gear
B. A panel that displays flight data
C. A streamlined shape that produces lift
D. A device that stores aircraft fuel

2 What is the chord line of an airfoil?

Understanding the configurations of airfoil and wings Easy
A. A line showing the direction of lift
B. A curve following the upper surface
C. A straight line from leading edge to trailing edge
D. A line connecting the wing tips

3 Which part of an airfoil first meets the airflow?

Understanding the configurations of airfoil and wings Easy
A. Leading edge
B. Wing root
C. The movable rear section used primarily to increase drag during landing
D. Trailing edge

4 What is the trailing edge of a wing?

Understanding the configurations of airfoil and wings Easy
A. The rear edge of the wing
B. The inner end of the wing
C. The front edge of the wing
D. The outer end of the wing

5 What does the camber of an airfoil describe?

Understanding the configurations of airfoil and wings Easy
A. The length of the fuselage
B. The rotation speed of the propeller
C. The curvature of the airfoil
D. The total mass of the wing

6 Which statement describes a symmetrical airfoil?

Understanding the configurations of airfoil and wings Easy
A. Its leading and trailing edges have equal thickness
B. Its upper and lower curves are identical
C. Its upper surface is always flat
D. Its lower surface is much thicker

7 Where is a high wing mounted?

Understanding the configurations of airfoil and wings Easy
A. Near the bottom of the fuselage
B. Behind the vertical stabilizer
C. Directly beneath the landing gear
D. Near the top of the fuselage

8 Where is a low wing mounted?

Understanding the configurations of airfoil and wings Easy
A. Above the cockpit
B. At the tail tip
C. Near the bottom of the fuselage
D. Near the top of the fuselage

9 What is a monoplane?

Understanding the configurations of airfoil and wings Easy
A. An aircraft with one main wing set
B. An aircraft with no fixed wings
C. An aircraft with a rotating wing above the fuselage
D. An aircraft with two main wing sets

10 What is a biplane?

Understanding the configurations of airfoil and wings Easy
A. An aircraft with one swept wing
B. An aircraft with a split fuselage
C. An aircraft with two stacked wing sets
D. An aircraft with three engines

11 What is wing dihedral?

Understanding the configurations of airfoil and wings Easy
A. An upward angle of both wings
B. A change in thickness from the wing root to the fuselage centerline
C. A downward angle of both wings
D. A backward angle of both wings

12 What is the wingspan of an aircraft?

Understanding the configurations of airfoil and wings Easy
A. The distance from nose to tail
B. The distance from one wing tip to the other
C. The curved distance measured around the entire outer surface of both wings
D. The distance from wing root to tail

13 What is the main purpose of the fuselage?

Understanding the fuselage shapes and control surfaces Easy
A. To increase the propeller's rotation speed
B. To connect and house major aircraft components
C. To control only the aircraft's roll
D. To generate all of the aircraft's lift

14 Why are many fuselages given a streamlined shape?

Understanding the fuselage shapes and control surfaces Easy
A. To reduce aerodynamic drag
B. To eliminate aircraft weight
C. To increase airflow resistance
D. To produce lift without requiring wings or any other aerodynamic surfaces

15 Which primary control surface controls roll?

Understanding the fuselage shapes and control surfaces Easy
A. Elevator
B. Aileron
C. Rudder
D. Flap

16 Which primary control surface controls pitch?

Understanding the fuselage shapes and control surfaces Easy
A. Aileron
B. Elevator
C. Rudder
D. Spoiler

17 Which primary control surface controls yaw?

Understanding the fuselage shapes and control surfaces Easy
A. Elevator
B. Aileron
C. Flap
D. Rudder

18 Where are ailerons normally located?

Understanding the fuselage shapes and control surfaces Easy
A. Under the cockpit beside the main landing gear assembly
B. Along the front edge of the fuselage
C. At the center of the vertical stabilizer
D. Near the outer trailing edges of the wings

19 What is the main purpose of wing flaps?

Understanding the fuselage shapes and control surfaces Easy
A. To replace the elevator during all phases of flight
B. To steer the aircraft on the ground
C. To control yaw during cruise
D. To increase lift at lower speeds

20 To which fixed surface is the rudder attached?

Understanding the fuselage shapes and control surfaces Easy
A. Main wing
B. Vertical stabilizer
C. Horizontal stabilizer
D. Fuselage nose

21 A cambered airfoil is held at a geometric angle of attack of . What aerodynamic behavior is most likely?

Understanding the configurations of airfoil and wings Medium
A. It immediately reaches its stall angle
B. It produces some positive lift
C. It produces no aerodynamic force
D. It produces only negative lift

22 An aerobatic aircraft must perform similarly during upright and inverted flight. Which airfoil configuration is most suitable?

Understanding the configurations of airfoil and wings Medium
A. A highly cambered airfoil
B. A symmetrical airfoil
C. A reflexed airfoil
D. A thick undercambered airfoil

23 Two wings have equal area, but Wing X has a greater span than Wing Y. At the same lift and speed, what advantage does Wing X generally have?

Understanding the configurations of airfoil and wings Medium
A. Lower induced drag
B. Lower skin-friction drag
C. Higher wave drag
D. Higher stall speed

24 Why are swept wings commonly used on aircraft designed for high-subsonic flight?

Understanding the configurations of airfoil and wings Medium
A. They eliminate induced drag
B. They increase low-speed lift
C. They delay compressibility effects
D. They prevent every wing stall

25 A gust raises the right wing of an aircraft with positive dihedral. What natural response helps restore level flight?

Understanding the configurations of airfoil and wings Medium
A. A permanent pitching moment develops
B. The rudder locks near neutral
C. A restoring rolling moment develops
D. The left wing stalls immediately

26 A wing is built with a smaller incidence angle at the tip than at the root. What is the main purpose of this washout?

Understanding the configurations of airfoil and wings Medium
A. Encourage the root to stall first
B. Increase drag during cruise
C. Encourage the tip to stall first
D. Remove all spanwise airflow

27 Compared with an untapered wing of similar span and area, why might a designer choose a moderately tapered wing?

Understanding the configurations of airfoil and wings Medium
A. To eliminate structural bending loads
B. To make air density constant
C. To improve lift distribution efficiency
D. To prevent all tip vortices

28 An aircraft needs to fly more slowly during landing without losing lift. Which wing-configuration change best supports this requirement?

Understanding the configurations of airfoil and wings Medium
A. Decrease the wing camber
B. Reduce the effective wing area
C. Extend the trailing-edge flaps
D. Retract the leading-edge slats

29 Which stall characteristic is generally associated with a simple rectangular wing?

Understanding the configurations of airfoil and wings Medium
A. The trailing edge stalls before the root
B. The entire wing stalls simultaneously
C. The stall always begins at both tips
D. The stall tends to begin near the root

30 Winglets are added to the tips of a transport aircraft. What improvement is primarily expected during efficient cruise?

Understanding the configurations of airfoil and wings Medium
A. Reduced fuselage friction
B. Increased profile drag
C. Increased stall speed
D. Reduced induced drag

31 A designer replaces a blunt fuselage shape with a smoothly tapered form while keeping volume similar. What is the main aerodynamic benefit?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. Increased induced drag
B. Reduced pressure drag
C. Reduced wing loading
D. Increased control reversal

32 Why do many pressurized aircraft use a fuselage with a nearly circular cross-section?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. It distributes pressure loads efficiently
B. It prevents longitudinal bending
C. It generates most aircraft lift
D. It eliminates aerodynamic drag

33 In a semi-monocoque fuselage, how are flight and landing loads mainly carried?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. By the skin, frames, and stringers
B. By the wings and windows
C. By the outer skin alone
D. By the cabin floor alone

34 A pilot pulls the control column backward in conventional flight. Which control surface moves to initiate the expected response?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. Both ailerons move upward
B. The rudder moves right
C. The elevator moves upward
D. The spoilers remain extended

35 During a right roll, the aircraft initially yaws left because the down-going aileron produces extra drag. What control input corrects this adverse yaw?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. Symmetrical spoiler input
B. Left rudder input
C. Right rudder input
D. Forward elevator input

36 An aircraft is disturbed so that its nose points left while its wings remain nearly level. Which primary control surface directly corrects this motion?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. The ailerons
B. The flaps
C. The elevator
D. The rudder

37 A pilot must maintain constant elevator pressure during level cruise. What adjustment would most directly reduce this continuous effort?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. Extend the landing flaps
B. Deflect the rudder fully
C. Adjust the elevator trim
D. Deploy both spoilers

38 How do differential ailerons help reduce adverse yaw during a turn?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. Both ailerons remain near neutral
B. Both ailerons deflect equally downward
C. The downward aileron deflects farther
D. The upward aileron deflects farther

39 A pilot deploys spoilers symmetrically during descent. What combination of effects should be expected?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. Lift and drag both decrease
B. Lift and drag both remain constant
C. Lift decreases and drag increases
D. Lift increases and drag decreases

40 Cargo is moved rearward so the center of gravity approaches the aircraft's aft limit. What handling change is most likely?

Understanding the configurations of fuselage shapes and control surfaces Medium
A. Pitch stability decreases
B. Pitch stability increases
C. Aileron forces double
D. Rudder authority disappears

41 A tailless aircraft must trim near its design lift coefficient without maintaining a large upward elevon deflection. Which airfoil change most directly supports this requirement?

Understanding the configurations of airfoil and wings Hard
A. Increase aft camber to strengthen the nose-down pitching moment
B. Sharpen the leading edge to move the aerodynamic center aft
C. Use a symmetric section with permanent upward elevon deflection
D. Use a reflexed mean line to reduce the nose-down pitching moment

42 At the same lift coefficient, a wing is redesigned from and to and . Using , how does induced drag change?

Understanding the configurations of airfoil and wings Hard
A. It increases by approximately
B. It increases by approximately
C. It decreases by approximately
D. It decreases by approximately

43 A wing at Mach has a leading-edge sweep of . Under the simplified normal-flow criterion, what Mach number primarily governs its section compressibility effects?

Understanding the configurations of airfoil and wings Hard
A. , matching the sweep cosine
B. , accelerating the normal flow
C. , delaying compressibility effects
D. , because sweep has no effect

44 A highly tapered wing stalls first near its tips, causing early aileron ineffectiveness. Which geometric modification most directly promotes root-first stall while preserving the planform?

Understanding the configurations of airfoil and wings Hard
A. Increase tip camber while retaining constant incidence
B. Reduce root thickness while retaining constant incidence
C. Add washout so the tip has lower geometric incidence
D. Add wash-in so the tip has higher geometric incidence

45 For an ideal planar wing with fixed span, area, and lift in incompressible flow, which spanwise loading minimizes induced drag?

Understanding the configurations of airfoil and wings Hard
A. Rectangular loading with constant sectional lift
B. Triangular loading with maximum lift at the root
C. Tip-loaded distribution with minimum root bending
D. Elliptical loading with nearly constant downwash

46 A swept-back wing experiences tip separation before root separation. Why can this produce a rapid nose-up tendency?

Understanding the configurations of airfoil and wings Hard
A. Higher tip drag shifts the aerodynamic center downward
B. Loss of aft tip lift shifts the resultant lift forward
C. Lower root drag shifts the neutral point forward
D. Loss of root lift shifts the resultant lift rearward

47 An aircraft enters ground effect while speed and lift coefficient are held constant by adjusting attitude. Which aerodynamic change is expected?

Understanding the configurations of airfoil and wings Hard
A. Wave drag increases because the reflected airflow raises local Mach number
B. Profile drag decreases because boundary-layer viscosity is reduced
C. Induced drag increases because effective aspect ratio becomes smaller
D. Induced drag decreases because downwash and tip-vortex strength are reduced

48 Why can a slotted flap reach a higher maximum lift coefficient than a similarly deflected plain flap?

Understanding the configurations of airfoil and wings Hard
A. The slot supplies energetic air that delays separation over the flap
B. The slot forces transition upstream and eliminates pressure drag
C. The slot reduces camber while increasing the effective wing area
D. The slot removes circulation and eliminates the flap-tip vortex

49 A laminar-flow wing performs well when clean but suffers an unexpectedly large cruise-drag increase after insect contamination near the leading edge. What is the principal cause?

Understanding the configurations of airfoil and wings Hard
A. Aft transition strengthens the shock and increases induced drag
B. Premature transition removes much of the low-drag laminar region
C. Reduced surface roughness moves the transition point farther aft
D. Premature separation permanently increases the wing's aspect ratio

50 Using , estimate the finite-wing lift-curve slope for per radian, , and .

Understanding the configurations of airfoil and wings Hard
A. per radian
B. per radian
C. per radian
D. per radian

51 A transonic aircraft has a sharp increase in total cross-sectional area where its wing joins the fuselage. Which redesign best applies the area rule?

Understanding the fuselage shapes and control surfaces Hard
A. Narrow the fuselage near the wing to smooth total area variation
B. Shorten the nose to move maximum body area farther forward
C. Deepen the aft fuselage to make fuselage area nearly uniform
D. Widen the fuselage near the wing to keep body area constant

52 Why does indefinitely increasing a subsonic fuselage's fineness ratio not guarantee lower total drag?

Understanding the fuselage shapes and control surfaces Hard
A. Reduced induced drag can be offset by weaker boundary-layer transition
B. Reduced pressure drag can be offset by greater wetted-area skin friction
C. Reduced wave drag can be offset by a shorter attached-flow region
D. Reduced skin friction can be offset by a smaller frontal pressure force

53 A new equipment fairing adds substantial side area well ahead of the center of gravity. What is the most likely directional-stability consequence, and how should it be corrected?

Understanding the fuselage shapes and control surfaces Hard
A. Increased stability; add effective vertical area farther forward
B. Reduced stability; move the vertical tail closer to the center
C. Increased stability; reduce the vertical tail moment arm
D. Reduced stability; add effective vertical area farther aft

54 During a roll command, an aileron system produces upward deflection on one wing but only downward deflection on the other, with no leading-edge projection. What system is this, and what is its main purpose?

Understanding the fuselage shapes and control surfaces Hard
A. Mass-balanced ailerons; they prevent control flutter
B. Drooped ailerons; they increase maximum lift
C. Frise ailerons; they increase aerodynamic balance
D. Differential ailerons; they reduce adverse yaw

55 To hold a conventional elevator trailing edge upward for steady nose-up trim without continuous control force, which trim-tab deflection is normally required?

Understanding the fuselage shapes and control surfaces Hard
A. Trim tab downward, producing a force that holds the elevator upward
B. Trim tab upward, producing a force that holds the elevator upward
C. Trim tab downward, producing a force that holds the elevator downward
D. Trim tab neutral, allowing tail downwash to hold the elevator upward

56 An all-moving stabilator is too sensitive at high speed. Which modification increases stick-force gradient without replacing the stabilator?

Understanding the fuselage shapes and control surfaces Hard
A. Add an anti-servo tab that moves with the stabilator
B. Add a balance tab that removes all hinge moment
C. Add a trim tab that remains fixed to the fuselage
D. Add a servo tab that moves opposite the stabilator

57 For a conventional V-tail with correctly mixed ruddervators, which command relationship is required?

Understanding the fuselage shapes and control surfaces Hard
A. Differential motion for pitch and symmetric motion for yaw
B. Symmetric motion for roll and differential motion for pitch
C. Differential motion for roll and symmetric motion for braking
D. Symmetric motion for pitch and differential motion for yaw

58 A tailless aircraft mixes elevons according to and . If and , what deflections are commanded?

Understanding the fuselage shapes and control surfaces Hard
A. and
B. and
C. and
D. and

59 After one engine fails, the remaining engine produces of thrust at a lateral offset of . If the rudder moment is , with , , , and per radian, what rudder deflection balances the yawing moment?

Understanding the fuselage shapes and control surfaces Hard
A. Approximately
B. Approximately
C. Approximately
D. Approximately

60 At very high dynamic pressure, downward aileron deflection causes a flexible wing to twist so strongly that the local angle of attack decreases and the commanded roll reverses. Which diagnosis and remedy are most appropriate?

Understanding the fuselage shapes and control surfaces Hard
A. Adverse yaw; enlarge the rudder or increase differential deflection
B. Aileron reversal; increase torsional stiffness or move the aileron inboard
C. Tip stall; add wash-in or increase the tip section's lift coefficient
D. Control flutter; reduce mass balance or move the aileron outboard